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1.
Physiol Plant ; 176(4): e14388, 2024.
Article in English | MEDLINE | ID: mdl-38946634

ABSTRACT

Plants can experience a variety of environmental stresses that significantly impact their fitness and survival. Additionally, biotic stress can harm agriculture, leading to reduced crop yields and economic losses worldwide. As a result, plants have developed defense strategies to combat potential invaders. These strategies involve regulating redox homeostasis. Several studies have documented the positive role of plant antioxidants, including Ascorbate (Asc), under biotic stress conditions. Asc is a multifaceted antioxidant that scavenges ROS, acts as a co-factor for different enzymes, regulates gene expression, and facilitates iron transport. However, little attention has been given to Asc and its transport, regulatory effects, interplay with phytohormones, and involvement in defense processes under biotic stress. Asc interacts with other components of the redox system and phytohormones to activate various defense responses that reduce the growth of plant pathogens and promote plant growth and development under biotic stress conditions. Scientific reports indicate that Asc can significantly contribute to plant resistance against biotic stress through mutual interactions with components of the redox and hormonal systems. This review focuses on the role of Asc in enhancing plant resistance against pathogens. Further research is necessary to gain a more comprehensive understanding of the molecular and cellular regulatory processes involved.


Subject(s)
Ascorbic Acid , Plant Growth Regulators , Plants , Stress, Physiological , Plant Growth Regulators/metabolism , Ascorbic Acid/metabolism , Plants/metabolism , Plants/immunology , Antioxidants/metabolism , Oxidation-Reduction , Gene Expression Regulation, Plant , Plant Diseases/immunology , Plant Diseases/microbiology
2.
PeerJ ; 12: e17633, 2024.
Article in English | MEDLINE | ID: mdl-38948208

ABSTRACT

Wheat stem rust, which is caused by Puccinia graminis f. sp. tritici (Pgt), is a highly destructive disease that affects wheat crops on a global scale. In this study, the reactions of 150 bread wheat varieties were evaluated for natural Pgt infection at the adult-plant stage in the 2019-2020 and 2020-2021 growing seasons, and they were analyzed using specific molecular markers to detect stem rust resistance genes (Sr22, Sr24, Sr25, Sr26, Sr31, Sr38, Sr50, and Sr57). Based on phenotypic data, the majority of the varieties (62%) were resistant or moderately resistant to natural Pgt infection. According to molecular results, it was identified that Sr57 was present in 103 varieties, Sr50 in nine varieties, Sr25 in six varieties, and Sr22, Sr31, and Sr38 in one variety each. Additionally, their combinations Sr25 + Sr50, Sr31 + Sr57, Sr38 + Sr50, and Sr38 + Sr57 were detected in these varieties. On the other hand, Sr24 and Sr26 were not identified. In addition, many varieties had low stem rust scores, including a large minority that lacked Sr57. These varieties must have useful resistance to stem rust and could be the basis for selecting greater, possibly durable resistance.


Subject(s)
Disease Resistance , Genetic Variation , Plant Diseases , Puccinia , Triticum , Triticum/microbiology , Triticum/genetics , Triticum/immunology , Plant Diseases/microbiology , Plant Diseases/genetics , Plant Diseases/immunology , Disease Resistance/genetics , Puccinia/pathogenicity , Genetic Variation/genetics , Plant Stems/microbiology , Plant Stems/immunology , Plant Stems/genetics , Genes, Plant , Basidiomycota/pathogenicity
3.
PeerJ ; 12: e17656, 2024.
Article in English | MEDLINE | ID: mdl-38948216

ABSTRACT

Fusarium crown rot (FCR), caused by Fusarium spp., is a devastating disease in wheat growing areas. Previous studies have shown that FCR is caused by co-infection of F. graminearum, F. pseudograminearum, F. proliferatum and F. verticillioides in Hubei Province, China. In this study, a method was developed to simultaneously detected DNAs of F. graminearum, F. pseudograminearum, F. proliferatum and F. verticillioides that can efficiently differentiate them. Whole genome sequence comparison of these four Fusarium spp. was performed and a 20 bp sequence was designed as an universal upstream primer. Specific downstream primers of each pathogen was also designed, which resulted in a 206, 482, 680, and 963 bp amplicon for each pathogen, respectively. Multiplex PCR specifically identified F. graminearum, F. pseudograminearum, F. proliferatum and F. verticillioides but not from other 46 pathogens, and the detection limit of target pathogens is about 100 pg/µl. Moreover, we accurately determined the FCR pathogen species in wheat samples using the optimized multiplex PCR method. These results demonstrate that the multiplex PCR method established in this study can efficiently and rapidly identify F. graminearum, F. pseudograminearum, F. proliferatum, and F. verticillioides, which should provide technical support for timely and targeted prevention and control of FCR.


Subject(s)
Fusarium , Multiplex Polymerase Chain Reaction , Plant Diseases , Triticum , Fusarium/genetics , Fusarium/isolation & purification , Triticum/microbiology , Plant Diseases/microbiology , Multiplex Polymerase Chain Reaction/methods , China , DNA, Fungal/genetics
4.
PeerJ ; 12: e17578, 2024.
Article in English | MEDLINE | ID: mdl-38948222

ABSTRACT

In the eastern coastal regions of Odisha, wilt caused by Fusarium oxysporum f. sp.capsici is an extremely damaging disease in chilli. This disease is very difficult to manage with chemical fungicides since it is soil-borne in nature. The natural rhizosphere soil of the chilli plant was used to isolate and test bacterial antagonists for their effectiveness and ability to promote plant growth. Out of the fifty-five isolates isolated from the rhizosphere of healthy chilli plants, five isolates, namely Iso 01, Iso 17, Iso 23, Iso 24, and Iso 32, showed their highly antagonistic activity against F. oxysporum f. sp. capsici under in vitro. In a dual culture, Iso 32 (73.3%) and Iso 24 (71.5%) caused the highest level of pathogen inhibition. In greenhouse trials, artificially inoculated chilli plants treated with Iso 32 (8.8%) and Iso 24 (10.2%) had decreased percent disease incidence (PDI), with percent disease reduction over control of 85.6% and 83.3%, respectively. Iso 32 and Iso 24 treated chilli seeds have shown higher seed vigor index of 973.7 and 948.8, respectively, as compared to untreated control 636.5. Furthermore, both the isolates significantly increased plant height as well as the fresh and dry weight of chilli plants under the rolled paper towel method. Morphological, biochemical, and molecular characterization identified Bacillus amyloliquefaciens (MH491049) as the key antagonist. This study demonstrates that rhizobacteria, specifically Iso 32 and Iso 24, can effectively protect chilli plants against Fusarium wilt while promoting overall plant development. These findings hold promise for sustainable and eco-friendly management of Fusarium wilt in chilli cultivation.


Subject(s)
Fusarium , Plant Diseases , Rhizosphere , Soil Microbiology , Fusarium/isolation & purification , Fusarium/pathogenicity , Fusarium/drug effects , Fusarium/growth & development , Plant Diseases/microbiology , Plant Diseases/prevention & control , Capsicum/microbiology , Capsicum/growth & development , Antibiosis/physiology , Plant Development
5.
PeerJ ; 12: e17568, 2024.
Article in English | MEDLINE | ID: mdl-38948232

ABSTRACT

Background: Colletotrichum species are among the most common pathogens in agriculture and forestry, and their control is urgently needed. Methods: In this study, a total of 68 strains of biocontrol bacteria were isolated and identified from Photinia × fraseri rhizosphere soil. Results: The isolates were identified as Brevibacillus brevis by 16S rRNA. The inhibitory effect of TR-4 on Colletotrichum was confirmed by an in vitro antagonistic experiment. The inhibitory effect of TR-4 was 98% at a concentration of 10 µl/ml bacterial solution, protection of the plant and inhibition of C. siamense was evident. Moreover, the secretion of cellulase and chitosan enzymes in the TR-4 fermentation liquid cultured for three days was 9.07 mol/L and 2.15 µl/mol, respectively. Scanning electron microscopy and transmission electron microscopy confirmed that TR-4 destroyed the cell wall of C. siamense, resulting in leakage of the cell contents, thus weakening the pathogenicity of the bacteria.


Subject(s)
Brevibacillus , Plant Diseases , Soil Microbiology , Brevibacillus/metabolism , Brevibacillus/genetics , Plant Diseases/microbiology , Colletotrichum/genetics , Colletotrichum/pathogenicity , RNA, Ribosomal, 16S/genetics , Plant Leaves/microbiology , Rhizosphere , Microscopy, Electron, Scanning
6.
Antonie Van Leeuwenhoek ; 117(1): 92, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38949726

ABSTRACT

Biological control is a promising approach to enhance pathogen and pest control to ensure high productivity in cash crop production. Therefore, PGPR biofertilizers are very suitable for application in the cultivation of tea plants (Camellia sinensis) and tobacco, but it is rarely reported so far. In this study, production of a consortium of three strains of PGPR were applied to tobacco and tea plants. The results demonstrated that plants treated with PGPR exhibited enhanced resistance against the bacterial pathogen Pseudomonas syringae (PstDC3000). The significant effect in improving the plant's ability to resist pathogen invasion was verified through measurements of oxygen activity, bacterial colony counts, and expression levels of resistance-related genes (NPR1, PR1, JAZ1, POD etc.). Moreover, the application of PGPR in the tea plantation showed significantly reduced population occurrences of tea green leafhoppers (Empoasca onukii Matsuda), tea thrips (Thysanoptera:Thripidae), Aleurocanthus spiniferus (Quaintanca) and alleviated anthracnose disease in tea seedlings. Therefore, PGPR biofertilizers may serve as a viable biological control method to improve tobacco and tea plant yield and quality. Our findings revealed part of the mechanism by which PGPR helped improve plant biostresses resistance, enabling better application in agricultural production.


Subject(s)
Nicotiana , Pest Control, Biological , Plant Diseases , Pseudomonas syringae , Animals , Plant Diseases/microbiology , Plant Diseases/prevention & control , Nicotiana/microbiology , Pseudomonas syringae/physiology , Pest Control, Biological/methods , Camellia sinensis/microbiology , Camellia sinensis/growth & development , Insecta/microbiology , Thysanoptera/microbiology , Disease Resistance , Plant Development , Biological Control Agents , Hemiptera/microbiology
7.
Viruses ; 16(6)2024 Jun 17.
Article in English | MEDLINE | ID: mdl-38932261

ABSTRACT

Begomoviruses have emerged as destructive pathogens of crops, particularly in the tropics and subtropics, causing enormous economic losses and threatening food security. Epidemics caused by begomoviruses have even spread in regions and crops that were previously free from these viruses. The most seriously affected crops include cassava; cotton; grain legumes; and cucurbitaceous, malvaceous, and solanaceous vegetables. Alphasatellites, betasatellites, and deltasatellites are associated with the diseases caused by begomoviruses, but begomovirus-betasatellite complexes have played significant roles in the evolution of begomoviruses, causing widespread epidemics in many economically important crops throughout the world. This article provides an overview of the evolution, distribution, and approaches used by betasatellites in the suppression of host plant defense responses and increasing disease severity.


Subject(s)
Begomovirus , Crops, Agricultural , Plant Diseases , Begomovirus/genetics , Begomovirus/physiology , Plant Diseases/virology , Crops, Agricultural/virology , Satellite Viruses/genetics , Satellite Viruses/physiology , Satellite Viruses/classification , Evolution, Molecular , DNA, Satellite/genetics , Phylogeny
8.
Mol Plant Pathol ; 25(6): e13488, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38924248

ABSTRACT

Xylanases derived from fungi, including phytopathogenic and nonpathogenic fungi, are commonly known to trigger plant immune responses. However, there is limited research on the ability of bacterial-derived xylanases to trigger plant immunity. Here, a novel xylanase named CcXyn was identified from the myxobacterium Cystobacter sp. 0969, which displays broad-spectrum activity against both phytopathogenic fungi and bacteria. CcXyn belongs to the glycoside hydrolases (GH) 11 family and shares a sequence identity of approximately 32.0%-45.0% with fungal xylanases known to trigger plant immune responses. Treatment of Nicotiana benthamiana with purified CcXyn resulted in the induction of hypersensitive response (HR) and defence responses, such as the production of reactive oxygen species (ROS) and upregulation of defence gene expression, ultimately enhancing the resistance of N. benthamiana to Phytophthora nicotianae. These findings indicated that CcXyn functions as a microbe-associated molecular pattern (MAMP) elicitor for plant immune responses, independent of its enzymatic activity. Similar to fungal xylanases, CcXyn was recognized by the NbRXEGL1 receptor on the cell membrane of N. benthamiana. Downstream signalling was shown to be independent of the BAK1 and SOBIR1 co-receptors, indicating the involvement of other co-receptors in signal transduction following CcXyn recognition in N. benthamiana. Moreover, xylanases from other myxobacteria also demonstrated the capacity to trigger plant immune responses in N. benthamiana, indicating that xylanases in myxobacteria are ubiquitous in triggering plant immune functions. This study expands the understanding of xylanases with plant immune response-inducing properties and provides a theoretical basis for potential applications of myxobacteria in biocontrol strategies against phytopathogens.


Subject(s)
Nicotiana , Plant Immunity , Nicotiana/microbiology , Nicotiana/immunology , Nicotiana/genetics , Plant Diseases/microbiology , Plant Diseases/immunology , Endo-1,4-beta Xylanases/metabolism , Endo-1,4-beta Xylanases/genetics , Reactive Oxygen Species/metabolism , Gene Expression Regulation, Plant
9.
Curr Microbiol ; 81(7): 204, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38831133

ABSTRACT

Erwinia amylovora, the primary causative agent of blight disease in rosaceous plants, poses a significant threat to agricultural yield worldwide, with limited effective countermeasures. The emergence of sustainable alternative agents such as bacteriophages is a promising solution for fire blight that specifically targets Erwinia. In this study, we isolated pEp_SNUABM_01 and pEa_SNUABM_55 from a South Korean apple orchard soil, analyzed their genomic DNA sequences, and performed a comprehensive comparative analysis of Hena1 in four distinct sections. This study aimed to unveil distinctive features of these phages, with a focus on host recognition, which will provide valuable insights into the evolution and characteristics of Henunavirus bacteriophages that infect plant pathogenic Erwinia spp. By elucidating the distinct genomic features of these phages, particularly in terms of host recognition, this study lays a foundation for their potential application in mitigating the risks associated with fire blight in Rosaceae plants on a global scale.


Subject(s)
Bacteriophages , Erwinia amylovora , Genome, Viral , Plant Diseases , Erwinia amylovora/virology , Erwinia amylovora/genetics , Plant Diseases/virology , Plant Diseases/microbiology , Bacteriophages/genetics , Bacteriophages/classification , Bacteriophages/isolation & purification , Phylogeny , Host Specificity , Genomics , Malus/microbiology , Malus/virology , Soil Microbiology
10.
Mol Biol Rep ; 51(1): 735, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38874770

ABSTRACT

BACKGROUND: Pomegranate (Punica granatum L.) is a tropical fruit crop of pharma-nutritional importance. However, it faces farming challenges due to pests and diseases, particularly bacterial blight and wilt. Developing resistant cultivars is crucial for sustainable pomegranate cultivation, and understanding resistance's genetic basis is essential. METHODS AND RESULTS: We used an extensive resistance gene analogues (RGA) prediction tool to identify 958 RGAs, classified into Nucleotide Binding Site-leucine-rich repeat (NBS-LRR) proteins, receptor-like kinases (RLKs), receptor-like proteins (RLPs), Transmembrane coiled-coil (TM-CC), and nine non-canonical RGAs. RGAs were distributed across all eight chromosomes, with chromosome 02 containing the most RGAs (161), and chromosome 08 having the highest density (4.42 RGA/Mb). NBS-LRR genes were predominantly present on chromosomes 08 and 02, whereas RLKs and RLPs were primarily located on chromosomes 04 and 07. Gene ontology analysis revealed that 475 RGAs were associated with defence against various biotic stresses. Using RNAseq, we identified 120 differentially expressed RGAs, with RLKs (74) being prominent among the differentially expressed genes. CONCLUSION: The discovery of these RGAs is a significant step towards breeding pomegranates for pest and disease resistance. The differentially expressed RLKs hold promise for developing resistant cultivars against bacterial blight, thereby contributing to the sustainability of pomegranate cultivation.


Subject(s)
Disease Resistance , Plant Diseases , Plant Proteins , Pomegranate , Transcriptome , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/genetics , Pomegranate/genetics , Transcriptome/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Genome, Plant , Gene Expression Regulation, Plant , Gene Expression Profiling/methods , Xanthomonas/pathogenicity
11.
Appl Microbiol Biotechnol ; 108(1): 371, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38861165

ABSTRACT

Understanding the extent of heritability of a plant-associated microbiome (phytobiome) is critically important for exploitation of phytobiomes in agriculture. Two crosses were made between pairs of cotton cultivars (Z2 and J11, L1 and Z49) with differential resistance to Verticillium wilt. F2 plants were grown in a field, together with the four parents to study the heritability of cotton rhizosphere microbiome. Amplicon sequencing was used to profile bacterial and fungal communities in the rhizosphere. F2 offspring plants of both crosses had higher average alpha diversity indices than the two parents; parents differed significantly from F2 offspring in Bray-Curtis beta diversity indices as well. Two types of data were used to study the heritability of rhizosphere microbiome: principal components (PCs) and individual top microbial operational taxonomic units (OTUs). For the L1 × Z49 cross, the variance among the F2 progeny genotypes (namely, genetic variance, VT) was significantly greater than the random variability (VE) for 12 and 34 out of top 100 fungal and bacterial PCs, respectively. For the Z2 × J11 cross, the corresponding values were 10 and 20 PCs. For 29 fungal OTUs and 10 bacterial OTUs out of the most abundant 100 OTUs, genetic variance (VT) was significantly greater than VE for the L1 × Z49 cross; the corresponding values for the Z2 × J11 cross were 24 and one. The estimated heritability was mostly in the range of 40% to 60%. These results suggested the existence of genetic control of polygenic nature for specific components of rhizosphere microbiome in cotton. KEY POINTS: • F2 offspring cotton plants differed significantly from parents in rhizosphere microbial diversity. • Specific rhizosphere components are likely to be genetically controlled by plants. • Common PCs and specific microbial groups are significant genetic components between the two crosses.


Subject(s)
Bacteria , Fungi , Gossypium , Microbiota , Rhizosphere , Soil Microbiology , Gossypium/microbiology , Gossypium/genetics , Microbiota/genetics , Fungi/genetics , Fungi/classification , Fungi/isolation & purification , Bacteria/genetics , Bacteria/classification , Bacteria/isolation & purification , Plant Diseases/microbiology , Plant Roots/microbiology , Plant Roots/genetics , Genetic Variation , Verticillium/genetics , Genotype
12.
Microb Biotechnol ; 17(6): e14489, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38864499

ABSTRACT

Treating plant bacterial diseases is notoriously difficult because of the lack of available antimicrobials. Pseudomonas syringae pathovar syringae (Pss) is a major pathogen of cherry (Prunus avium) causing bacterial canker of the stem, leaf and fruit, impacting productivity and leading to a loss of trees. In an attempt to find a treatment for this disease, naturally occurring bacteriophage (phage) that specifically target Pss is being investigated as a biocontrol strategy. However, before using them as a biocontrol treatment, it is important to both understand their efficacy in reducing the bacterial population and determine if the bacterial pathogens can evolve resistance to evade phage infection. To investigate this, killing curve assays of five MR phages targeting Pss showed that phage resistance rapidly emerges in vitro, even when using a cocktail of the five phages together. To gain insight to the changes occurring, Pss colonies were collected three times during a 66-h killing curve assay and separately, Pss and phage were also coevolved over 10 generations, enabling the measurement of genomic and fitness changes in bacterial populations. Pss evolved resistance to phages through modifications in lipopolysaccharide (LPS) synthesis pathways. Bacterial fitness (growth) and virulence were affected in only a few mutants. Deletion of LPS-associated genes suggested that LPS was the main target receptor for all five MR phages. Later generations of coevolved phages from the coevolution experiment were more potent at reducing the bacterial density and when used with wild-type phages could reduce the emergence of phage-resistant mutants. This study shows that understanding the genetic mechanisms of bacterial pathogen resistance to phages is important for helping to design a more effective approach to kill the bacteria while minimizing the opportunity for phage resistance to manifest.


Subject(s)
Plant Diseases , Pseudomonas syringae , Pseudomonas syringae/virology , Pseudomonas syringae/genetics , Plant Diseases/microbiology , Pseudomonas Phages/genetics , Pseudomonas Phages/physiology , Bacteriophages/genetics , Bacteriophages/physiology
13.
PLoS One ; 19(6): e0301342, 2024.
Article in English | MEDLINE | ID: mdl-38865348

ABSTRACT

BRRI31R is one of the Bangladesh's most promising restorer lines due to its abundant pollen producing capacity, strong restoring ability, good combining ability, high outcrossing rate and genetically diverse from cytoplasmic male sterile (CMS) line. But the drawback of this line is that it is highly susceptible to bacterial blight (BB) disease of rice caused by Xanthomonas oryzae pv. oryzae. The present study highlighted the pyramiding of effective BB resistance genes (xa5, xa13 and Xa21) into the background of BRRI31R, through marker-assisted backcrossing (MABC). Backcross progenies were confirmed and advanced based on the foreground selection of target genes. Pyramided lines were used for pathogenicity test against five Bangladeshi Xanthomonas oryzae (BXo) races (BXo93, BXo220, BXo822, BXo826, BXo887) and confirmed the dominant fertility restore genes, Rf3 and Rf4 and further validated against SNP markers for more confirmation of target resistance genes. All pyramided restorer lines consisted of Xa4 (in built), xa5, xa13, Xa21, and Chalk5 with two fertility restorer genes, Rf3, Rf4. and these restorer lines showed intermediate amylose content (<25%). Restorer lines BRRI31R-MASP3 and BRRI31R-MASP4 showed high levels of resistance against five virulent BXo races and SNP genotyping revealed that these lines also contained a blast resistance gene Pita races. Gene pyramided restorer lines, BRRI31R-MASP3 and BRRI31R-MASP4 can directly be used as a male parent for the development of new BB resistant hybrid rice variety or could be used as a replacement of restorer line of BRRI hybrid dhan5 and 7 to enhance the quality of hybrid seeds as well as rice production in Bangladesh.


Subject(s)
Disease Resistance , Oryza , Plant Breeding , Plant Diseases , Xanthomonas , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/genetics , Xanthomonas/pathogenicity , Xanthomonas/genetics , Oryza/microbiology , Oryza/genetics , Genes, Plant , Genetic Markers , Crosses, Genetic
14.
Plant Cell Rep ; 43(6): 158, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38822833

ABSTRACT

KEY MESSAGE: Transgenic plants stably overexpressing ScOPR1 gene enhanced disease resistance by increasing the accumulation of JA, SA, and GST, as well as up-regulating the expression of genes related to signaling pathways. 12-Oxo-phytodienoate reductase (OPR) is an oxidoreductase that depends on flavin mononucleotide (FMN) and catalyzes the conversion of 12-oxophytodienoate (12-OPDA) into jasmonic acid (JA). It plays a key role in plant growth and development, and resistance to adverse stresses. In our previous study, we have obtained an OPR gene (ScOPR1, GenBank Accession Number: MG755745) from sugarcane. This gene showed positive responses to methyl jasmonate (MeJA), salicylic acid (SA), abscisic acid (ABA), and Sporisorium scitamineum, suggesting its potential for pathogen resistance. Here, in our study, we observed that Nicotiana benthamiana leaves transiently overexpressing ScOPR1 exhibited weaker disease symptoms, darker 3,3-diaminobenzidine (DAB) staining, higher accumulation of reactive oxygen species (ROS), and higher expression of hypersensitive response (HR) and SA pathway-related genes after inoculation with Ralstonia solanacearum and Fusarium solanacearum var. coeruleum. Furthermore, the transgenic N. benthamiana plants stably overexpressing the ScOPR1 gene showed enhanced resistance to pathogen infection by increasing the accumulation of JA, SA, and glutathione S-transferase (GST), as well as up-regulating genes related to HR, JA, SA, and ROS signaling pathways. Transcriptome analysis revealed that the specific differentially expressed genes (DEGs) in ScOPR1-OE were significantly enriched in hormone transduction signaling and plant-pathogen interaction pathways. Finally, a functional mechanism model of the ScOPR1 gene in response to pathogen infection was depicted. This study provides insights into the molecular mechanism of ScOPR1 and presents compelling evidence supporting its positive involvement in enhancing plant disease resistance.


Subject(s)
Cyclopentanes , Disease Resistance , Gene Expression Regulation, Plant , Oxylipins , Plant Diseases , Plant Growth Regulators , Plant Proteins , Plants, Genetically Modified , Saccharum , Salicylic Acid , Signal Transduction , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/genetics , Saccharum/genetics , Saccharum/microbiology , Signal Transduction/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Growth Regulators/metabolism , Oxylipins/metabolism , Salicylic Acid/metabolism , Cyclopentanes/metabolism , Nicotiana/genetics , Nicotiana/microbiology , Reactive Oxygen Species/metabolism , Acetates/pharmacology , Plant Leaves/genetics , Plant Leaves/microbiology , Abscisic Acid/metabolism , Ralstonia solanacearum/physiology , Ralstonia solanacearum/pathogenicity
15.
BMC Plant Biol ; 24(1): 522, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38853241

ABSTRACT

BACKGROUND: Several WRKY transcription factors (TFs), including CaWRKY6, CaWRKY22, CaWRKY27, and CaWRKY40 are known to govern the resistance of pepper (Capsicum annuum L.) plants to Ralstonia solanacearum infestation (RSI) and other abiotic stresses. However, the molecular mechanisms underlying these processes remain elusive. METHODS: This study functionally described CaWRKY3 for its role in pepper immunity against RSI. The roles of phytohormones in mediating the expression levels of CaWRKY3 were investigated by subjecting pepper plants to 1 mM salicylic acid (SA), 100 µM methyl jasmonate (MeJA), and 100 µM ethylene (ETH) at 4-leaf stage. A virus-induced gene silencing (VIGS) approach based on the Tobacco Rattle Virus (TRV) was used to silence CaWRKY3 in pepper, and transiently over-expressed to infer its role against RSI. RESULTS: Phytohormones and RSI increased CaWRKY3 transcription. The transcriptions of defense-associated marker genes, including CaNPR1, CaPR1, CaDEF1, and CaHIR1 were decreased in VIGS experiment, which made pepper less resistant to RSI. Significant hypersensitive (HR)-like cell death, H2O2 buildup, and transcriptional up-regulation of immunological marker genes were noticed in pepper when CaWRKY3 was transiently overexpressed. Transcriptional activity of CaWRKY3 was increased with overexpression of CaWRKY6, CaWRKY22, CaWRKY27, and CaWRKY40, and vice versa. In contrast, Pseudomonas syringae pv tomato DC3000 (Pst DC3000) was easily repelled by the innate immune system of transgenic Arabidopsis thaliana that overexpressed CaWRKY3. The transcriptions of defense-related marker genes like AtPR1, AtPR2, and AtNPR1 were increased in CaWRKY3-overexpressing transgenic A. thaliana plants. CONCLUSION: It is concluded that CaWRKY3 favorably regulates phytohormone-mediated synergistic signaling, which controls cell death in plant and immunity of pepper plant against bacterial infections.


Subject(s)
Capsicum , Gene Expression Regulation, Plant , Plant Diseases , Plant Growth Regulators , Plant Immunity , Plant Proteins , Ralstonia solanacearum , Transcription Factors , Ralstonia solanacearum/physiology , Capsicum/genetics , Capsicum/immunology , Capsicum/microbiology , Transcription Factors/genetics , Transcription Factors/metabolism , Plant Diseases/microbiology , Plant Diseases/immunology , Plant Diseases/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Growth Regulators/metabolism , Cyclopentanes/metabolism , Disease Resistance/genetics , Oxylipins/metabolism , Salicylic Acid/metabolism , Ethylenes/metabolism , Gene Silencing , Acetates/pharmacology
16.
Pestic Biochem Physiol ; 202: 105949, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879335

ABSTRACT

Quinone outside inhibitor (QoI) has been applied to manage taro leaf blight caused by Phytophthora colocasiae in southeastern of China for many years. The risk of P. colocasiae to QoI and the potential resistant mechanism remain unknown. In this study, the 74 P. colocasiae strains were sampled from southeastern of China. Sequence analysis of the QoI target Cytb showed one nucleotide variant in the fragment of this gene in this population, producing two haplotypes. The nucleotide variant leads to codon change at 142 (GGT to GCT) producing A142 (alanine) and G142 (glycine) in Hap_1 and Hap_2 strains, respectively. The sensitivity differentiation to azoxystrobin of two haplotypes were observed in vitro. The Hap_1 and Hap_2 strains were confirmed resistant and sensitive by control efficacy of label rate fungicide application, which was 3.0% and 88.8% treated with 500 µg/mL azoxystrobin, respectively. In addition, 10.0 µg/mL azoxystrobin plus 50 µg/mL salicylhydroxamic acid (SHAM) supplemented in PDA medium was identified as a discriminatory dose for differentiation of these two phenotype strains. The azoxystrobin resistant frequency reached 86.5%, indicating prevalence of QoI resistance in the field. Further fitness related features showed that no significant difference in temperature sensitivity, mycelial growth rate, sporangia production, zoospore release and aggressiveness between azoxystrobin-resistant and sensitive strains indicating no potential fitness cost for azoxystrobin resistance. Taken together, azoxystrobin resistance need to be taken into consideration to manage taro leaf blight in southeastern of China.


Subject(s)
Fungicides, Industrial , Phytophthora , Pyrimidines , Strobilurins , Strobilurins/pharmacology , Fungicides, Industrial/pharmacology , China , Phytophthora/drug effects , Phytophthora/genetics , Pyrimidines/pharmacology , Plant Diseases/microbiology , Drug Resistance, Fungal/genetics
17.
Pestic Biochem Physiol ; 202: 105955, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879308

ABSTRACT

Bacterial diseases pose a significant threat to the sustainable production of crops. Given the unsatisfactory performance and poor eco-compatibility of conventional bactericides, here we present a series of newly structured bactericides that are inspiringly designed by aurone found in plants of the Asteraceae family. These aurone-derived compounds contain piperazine sulfonamide motifs and have shown promising in vitro performance against Xanthomonas oryzae pv. oryzae, Xanthomonas oryzae pv. oryzicola and Xanthomonas axonopodis pv. citri, in particular, compound II23 achieved minimum half-maximal effective concentrations of 1.06, 0.89, and 1.78 µg/mL, respectively. In vivo experiments conducted in a greenhouse environment further revealed that II23 offers substantial protective and curative effects ranging between 68.93 and 70.29% for rice bacterial leaf streak and 53.17-64.43% for citrus bacterial canker, which stands in activity compared with lead compound aurone and commercial thiodiazole copper. Additional physiological and biochemical analyses, coupled with transcriptomics, have verified that II23 enhances defense enzyme activities and chlorophyll levels in rice. Significantly, it also stimulates the accumulation of abscisic acid (ABA) and upregulates the expression of key genes OsPYL/RCAR5, OsBIPP2C1, and OsABF1, thereby activating the ABA signaling pathway in rice plants under biological stress from bacterial infections.


Subject(s)
Piperazines , Plant Diseases , Sulfonamides , Xanthomonas , Plant Diseases/microbiology , Plant Diseases/prevention & control , Xanthomonas/drug effects , Piperazines/pharmacology , Piperazines/chemistry , Sulfonamides/pharmacology , Oryza/microbiology , Anti-Bacterial Agents/pharmacology , Xanthomonas axonopodis/drug effects , Benzofurans
18.
Pestic Biochem Physiol ; 202: 105933, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879325

ABSTRACT

Citrus sour rot is a common postharvest citrus disease caused by Geotrichum citri-aurantiiti, which has led to enormous economic losses, particularly during rainy seasons. In this study, we aimed to clarify the impact of berberine hydrochloride (BH), the hydrochloride form of an isoquinoline alkaloid, on the control efficiency of citrus sour rot and its antifungal mode against G. citri-aurantii. Results demonstrated that BH markedly impede the propagation of G. citri-aurantii by delaying the spores development from dormant stage into swollen and germinating stages, with the MIC and MFC value of 0.08 and 0.16 g L-1, respectively. When the artificially inoculated citrus fruit in control group were totally rotted, the disease incidence of BH-treated groups decreased by 35.00%-73.30%, which effectively delayed the disease progression and almost did not negatively affect fruit quality. SEM observation, CFW and PI staining images revealed that BH caused significant damage to both the cell membrane and cell wall of G. citri-aurantii spores, whereas only the cell membrane of the mycelium was affected. The impact of cell wall was related to the block of chitin and ß-1,3-glucan synthesis. Transcriptome results and further verification proved that 0.5 × MIC BH treatment affected the glycolysis pathway and TCA cycle mainly by inhibiting the production of acetyl-CoA and pyruvate. Subsequently, the activities of key enzymes declined, resulting in a further decrease in ATP levels, ultimately inhibiting the germination of spores. In conlusion, BH delays citrus sour rot mainly by disrupting carbohydrate and energy metabolism of G. citri-aurantii spores.


Subject(s)
Berberine , Citrus , Energy Metabolism , Geotrichum , Plant Diseases , Spores, Fungal , Citrus/microbiology , Geotrichum/drug effects , Geotrichum/metabolism , Plant Diseases/microbiology , Plant Diseases/prevention & control , Berberine/pharmacology , Energy Metabolism/drug effects , Spores, Fungal/drug effects , Carbohydrate Metabolism/drug effects , Fungicides, Industrial/pharmacology
19.
Pestic Biochem Physiol ; 202: 105913, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879317

ABSTRACT

Bacterial leaf blight, caused by Xanthomonas oryzae pv. oryzae (Xoo), poses a significant threat to rice cultivation across diverse regions. Growing concerns about pesticide resistance and environmental impact underscore the urgent necessity for eco-friendly biopesticides. Here, the complete genome sequence of Streptomyces albidoflavus strain ML27 revealed substantial antimicrobial activity and secondary metabolite production potential through genome mining. 3,4-dimethoxyphenol (purity 97%) was successfully isolated from the fermentation broth of S. albidoflavus strain ML27, exhibiting broad and pronounced inhibitory effects on the growth of seven different fungi and five tested bacteria. The efficacy of 3,4-dimethoxyphenol in controlling rice bacterial leaf blight was evaluated through pot tests, demonstrating substantial therapeutic (69.39%) and protective (84.53%) effects. Application of 3,4-dimethoxyphenol to Xoo resulted in cells displayed notable surface depressions, wrinkles, distortions, or even ruptures compared to their typical morphology. Transcriptome analysis revealed significant inhibition of membrane structures, protein synthesis and secretion, bacterial secretion system, two-component system, flagellar assembly, as well as various metabolic and biosynthetic pathways by 3,4-dimethoxyphenol. Notably, the down-regulation of the type III secretion system (T3SS) expression was a pivotal finding. Furthermore, validation via quantitative real-time polymerase chain reaction (qRT-PCR) analysis confirmed significant downregulation of 10 genes related to T3SS upon 3,4-dimethoxyphenol treatment. Based on these results, it is promising to develop 3,4-dimethoxyphenol as a novel biopesticide targeting the T3SS of Xoo for controlling bacterial leaf blight in rice.


Subject(s)
Streptomyces , Xanthomonas , Xanthomonas/drug effects , Xanthomonas/genetics , Streptomyces/genetics , Streptomyces/metabolism , Plant Diseases/microbiology , Gene Expression Profiling , Oryza/microbiology , Anti-Bacterial Agents/pharmacology
20.
Pestic Biochem Physiol ; 202: 105956, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879338

ABSTRACT

Pepper southern blight, caused by Sclerotium rolfsii, is a devastating soil-borne disease resulting in significant loss to pepper, Capsicum annuum L. production. Here, we isolated an antagonistic bacterial strain XQ-29 with antifungal activity against S. rolfsii from rhizospheric soil of pepper. Combining the morphological and biochemical characteristics with the 16S rDNA sequencing, XQ-29 was identified as Streptomyces griseoaurantiacus. It exhibited an inhibition of 96.83% against S. rolfsii and displayed significant inhibitory effects on Botrytis cinerea, Phytophthora capsica and Rhizoctonia solani. Furthermore, XQ-29 significantly reduced the pepper southern blight by 100% and 70.42% during seedling and growth stages, respectively. The antifungal mechanism involved altering the mycelial morphology, disrupting cell wall and membrane integrity, accompanied by accumulation of reactive oxygen species and lipid peroxidation in S. rolfsii mycelia. Furthermore, XQ-29 promoted growth and stimulated resistance of pepper plants by increasing defense-related enzyme activities and upregulating defense-related genes. Correspondingly, XQ-29 harbors numerous functional biosynthesis gene clusters in its genome, including those for siderophores and melanin production. The metabolic constituents present in the ethyl acetate extracts, which exhibited an EC50 value of 85.48 ± 1.62 µg/mL, were identified using LC-MS. Overall, XQ-29 demonstrates significant potential as a biocontrol agent against southern blight disease.


Subject(s)
Botrytis , Capsicum , Plant Diseases , Rhizoctonia , Streptomyces , Plant Diseases/microbiology , Plant Diseases/prevention & control , Capsicum/microbiology , Streptomyces/genetics , Streptomyces/physiology , Botrytis/drug effects , Botrytis/physiology , Rhizoctonia/physiology , Rhizoctonia/drug effects , Basidiomycota/physiology , Phytophthora/physiology , Phytophthora/drug effects , Biological Control Agents/pharmacology , Antifungal Agents/pharmacology
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